Typed states for the displayed outbound observations.
Source: paper_references, paper_reference_links, observed 2026-08-04T12:43:36.469540Z
Paper Citation Record · LEDGER
As of 8 August 2026, this Paper Citation Record lists 39 of 39 outbound references and 0 inbound Pith citation observations for arXiv:2510.02872.
A citation records a reference. It does not transfer a finding from one paper to another.
Typed states for the displayed outbound observations.
Source: paper_references, paper_reference_links, observed 2026-08-04T12:43:36.469540Z
One-hop event checks from named stored sources.
Source: scholarly_work_events, retraction_status_cache, observed 2026-08-08T06:32:00.761636+00:00
Pith citing papers itemized under the disclosed page cap.
Source: paper_references, paper_reference_links
A source-named dated measurement, never combined with another source.
Source: cited_works
39 of 39 outbound references displayed
External citation measurements
No source-named external measurement is stored.
Observation 9035e194-97d6-468a-9b79-d7b1648a0952 · outbound
A physics-informed neural network approach to the point defect model for electrochemical oxide film growth Iannuzzi and G
Reference 1
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Observation 6c9cdd55-0428-4146-909d-94d23bedcca6 · outbound
A physics-informed neural network approach to the point defect model for electrochemical oxide film growth Sustainable corrosion inhibitors: A key step towards environmentally responsible corrosion control.Ain Shams Engineering Journal, 15(5):102672, 2024
Reference 2
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Observation 96ebcc41-85c0-4391-9c09-782056502c51 · outbound
A physics-informed neural network approach to the point defect model for electrochemical oxide film growth Singh and E
Reference 3
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Observation 21e1242a-d528-4333-9338-d7cf662814b9 · outbound
A physics-informed neural network approach to the point defect model for electrochemical oxide film growth Fu, Pakpoom Buabthong, Zachary Philip Ifkovits, Weilai Yu, Bruce S
Reference 4
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Observation d0392ca1-7ed3-49fc-b799-35fd0a2db976 · outbound
A physics-informed neural network approach to the point defect model for electrochemical oxide film growth Origin of nanoscale heterogeneity in the surface oxide film protecting stainless steel against corrosion.npj Materials Degradation, 3(1):29, 2019
Reference 5
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Observation 397ea337-a8a3-465e-ab22-9ed3967bf766 · outbound
A physics-informed neural network approach to the point defect model for electrochemical oxide film growth Current developments of nanoscale insight into corrosion protection by passive oxide films.Current Opinion in Solid State and Materials Science, 22(4):156–167, 2018
Reference 6
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Observation 4acf0f65-e512-4e75-bd19-4d3eed592487 · outbound
Reference 7
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Observation d2cb24c0-b076-49e9-85f0-60ad842c033e · outbound
A physics-informed neural network approach to the point defect model for electrochemical oxide film growth Oxide Film Growth Kinetics on Metals and Alloys: I
Reference 8
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Observation 0af942c7-0f19-41eb-a1a0-7185816ec008 · outbound
A physics-informed neural network approach to the point defect model for electrochemical oxide film growth Oxide Film Growth Kinetics on Metals and Alloys: II
Reference 9
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Observation 7958789f-cd03-4b36-9ce8-4259f35fcc81 · outbound
A physics-informed neural network approach to the point defect model for electrochemical oxide film growth Modeling electrochemical oxide film growth—passive and transpassive behavior of iron electrodes in halide-free solution.npj Materials Degradation, 7(1):53, June 2023
Reference 10
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Observation c0474f7d-456d-4ba4-a460-ce9539593df3 · outbound
A physics-informed neural network approach to the point defect model for electrochemical oxide film growth Modeling and simulation of passive film formation and breakdown in chloride ion containing electrolytes – a point defect model extension.Corrosion Science, 256:113166, 2025
Reference 11
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Observation 8f6146c5-5d3a-4075-acc3-ab2aec611a5c · outbound
A physics-informed neural network approach to the point defect model for electrochemical oxide film growth Macdonald, Jie Yang, Jie Qiu, and Shuzhong Wang
Reference 12
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Observation e00466ab-427e-41a9-befd-d21bec87229f · outbound
A physics-informed neural network approach to the point defect model for electrochemical oxide film growth Kolotinskii, V .S
Reference 13
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Observation 2cc9a5ef-bff4-4795-a01c-af1fb9f9e6a7 · outbound
A physics-informed neural network approach to the point defect model for electrochemical oxide film growth Modeling of a growing oxide film: The iron/iron oxide system.Journal of The Electrochemical Society, 142(5):1423–1430, 1995
Reference 14
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Observation 271e009f-8bc5-4881-9432-642a3f4ca0ff · outbound
A physics-informed neural network approach to the point defect model for electrochemical oxide film growth Engelhardt, Dihao Chen, Chaofang Dong, and Digby D
Reference 15
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Observation d05c93b4-dd16-4edb-b71d-7b75f572af3d · outbound
A physics-informed neural network approach to the point defect model for electrochemical oxide film growth Bataillon, F
Reference 16
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Observation 5309f142-9ff5-4f12-8371-6a67b5af2a4a · outbound
Reference 17
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Observation e10c3257-7c9d-4024-ac96-f97500a857ba · outbound
Reference 18
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Observation 912c3107-2924-4166-a3d1-eff0f38fbaed · outbound
A physics-informed neural network approach to the point defect model for electrochemical oxide film growth Physics-Informed Neural Networks for Electrical Circuit Analysis: Applications in Dielectric Material Modeling
Reference 19
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Observation 2fad9002-255b-491c-9133-f2e044a9b93d · outbound
A physics-informed neural network approach to the point defect model for electrochemical oxide film growth PF-PINNs: Physics-informed neural networks for solving coupled allen-cahn and cahn-hilliard phase field equations.Journal of Computational Physics, 529:113843, 2025
Reference 20
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Observation f4a80d68-5ff5-4cdc-9595-8df4875857ae · outbound
A physics-informed neural network approach to the point defect model for electrochemical oxide film growth Predicting voltammetry using physics-informed neural networks.The Journal of Physical Chemistry Letters, 13(2):536–543, 2022
Reference 21
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Observation b918cdcf-70f1-4aaf-8640-0085f9eda996 · outbound
A physics-informed neural network approach to the point defect model for electrochemical oxide film growth Unresolved cited work
Reference 22
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Observation 3efd5033-8996-4a42-b246-2cd763a81af1 · outbound
A physics-informed neural network approach to the point defect model for electrochemical oxide film growth A comprehensive analysis of PINNs: Variants, Applications, and Challenges
Reference 23
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Observation 0956d21d-1d1c-4a17-bc9c-ecaa027fdd74 · outbound
A physics-informed neural network approach to the point defect model for electrochemical oxide film growth A physics- informed neural network framework for multi-physics coupling microfluidic problems.Computers & Fluids, 284:106421, November 2024
Reference 24
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Observation 05cebcaa-f8fb-4c6e-9d13-3ba964c3f4c5 · outbound
A physics-informed neural network approach to the point defect model for electrochemical oxide film growth A Physics Informed Neural Network (PINN) Methodology for Coupled Moving Boundary PDEs
Reference 25
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Observation 22f47ada-ff34-4d44-9775-a9034a134231 · outbound
A physics-informed neural network approach to the point defect model for electrochemical oxide film growth Is it time to swish? Comparing activation functions in solving the Helmholtz equation using physics-informed neural networks
Reference 26
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Observation 4a0fe769-a2c0-49f5-b205-dc434bc59502 · outbound
A physics-informed neural network approach to the point defect model for electrochemical oxide film growth A comparative study of dimensional and non-dimensional inputs in physics-informed and data-driven neural networks for single-droplet evaporation
Reference 27
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Observation e56c2682-3414-43fd-8381-1e6a5cee7448 · outbound
A physics-informed neural network approach to the point defect model for electrochemical oxide film growth Neural Tangent Kernel: Convergence and Generalization in Neural Networks
Reference 28
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Observation 075a9766-caef-42ec-aded-f9c724336840 · outbound
A physics-informed neural network approach to the point defect model for electrochemical oxide film growth PF-PINNs: Physics-informed neural networks for solving coupled Allen-Cahn and Cahn-Hilliard phase field equations.Journal of Computational Physics, 529:113843, May 2025
Reference 29
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Observation 634b09ad-ee03-4c93-848d-3aaf7cc40c94 · outbound
A physics-informed neural network approach to the point defect model for electrochemical oxide film growth Enhanced Physics-Informed Neural Networks with Augmented Lagrangian Relaxation Method (AL-PINNs)
Reference 30
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Observation 1d679bc7-602a-4d91-b33e-6e89fbcd4355 · outbound
A physics-informed neural network approach to the point defect model for electrochemical oxide film growth PHYSICS-INFORMED NEURAL NETWORKS WITH CURRICULUM TRAINING FOR POROELASTIC FLOW AND DEFORMATION PROCESSES
Reference 31
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Observation 9e4d212c-0167-404a-b7b2-167643bb7381 · outbound
A physics-informed neural network approach to the point defect model for electrochemical oxide film growth Visualizing the Loss Landscape of Neural Nets
Reference 32
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Observation 6f644cb6-3c07-4ebd-88ec-a3d16cf9f106 · outbound
A physics-informed neural network approach to the point defect model for electrochemical oxide film growth Deep Residual Learning for Image Recognition
Reference 33
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Observation 066bdeb3-2b0c-4c15-b4f8-6df3c67263cf · outbound
A physics-informed neural network approach to the point defect model for electrochemical oxide film growth Investigating and Mitigating Failure Modes in Physics-informed Neural Networks (PINNs)
Reference 34
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Observation e9705032-6e0b-4396-8b59-8ac801dfbfd8 · outbound
A physics-informed neural network approach to the point defect model for electrochemical oxide film growth Achieving High Accuracy with PINNs via Energy Natural Gradients
Reference 35
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Observation f5ac6786-ad7f-4da0-85a2-8ec5e65e21ba · outbound
A physics-informed neural network approach to the point defect model for electrochemical oxide film growth Improving Energy Natural Gradient Descent through Woodbury, Momentum, and Randomization, May 2025
Reference 36
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Observation 81070f06-bff8-4068-8fbd-409667e881ed · outbound
A physics-informed neural network approach to the point defect model for electrochemical oxide film growth Unresolved cited work
Reference 37
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Observation d3ebcb9b-389d-4703-9f4b-5969ba450d67 · outbound
A physics-informed neural network approach to the point defect model for electrochemical oxide film growth From PINNs to PIKANs: Recent Advances in Physics-Informed Machine Learning
Reference 38
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Observation 6130aeec-ed7b-472c-8308-2069210a03e2 · outbound
A physics-informed neural network approach to the point defect model for electrochemical oxide film growth Finite Basis Physics-Informed Neural Networks (FBPINNs): a scalable domain decomposition approach for solving differential equations
Reference 39
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No inbound Pith citation observations are available.